DeepLSD: Line Segment Detection and Refinement with Deep Image Gradients

Remi Pautrat, Daniel Barath, Viktor Larsson, Martin R. Oswald, Marc Pollefeys

Forskningsoutput: Kapitel i bok/rapport/Conference proceedingKonferenspaper i proceedingPeer review

Sammanfattning

Line segments are ubiquitous in our human-made world and are increasingly used in vision tasks. They are complementary to feature points thanks to their spatial extent and the structural information they provide. Traditional line detectors based on the image gradient are extremely fast and accurate, but lack robustness in noisy images and challenging conditions. Their learned counterparts are more repeatable and can handle challenging images, but at the cost of a lower accuracy and a bias towards wireframe lines. We propose to combine traditional and learned approaches to get the best of both worlds: an accurate and robust line detector that can be trained in the wild without ground truth lines. Our new line segment detector, DeepLSD, processes images with a deep network to generate a line attraction field, before converting it to a surrogate image gradient magnitude and angle, which is then fed to any existing handcrafted line detector. Additionally, we propose a new optimization tool to refine line segments based on the attraction field and vanishing points. This refinement improves the accuracy of current deep detectors by a large margin. We demonstrate the performance of our method on low-level line detection metrics, as well as on several downstream tasks using multiple challenging datasets. The source code and models are available at https://github.com/cvg/DeepLSD.

Originalspråkengelska
Titel på värdpublikationProceedings - 2023 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2023
FörlagIEEE Computer Society
Sidor17327-17336
Antal sidor10
ISBN (elektroniskt)9798350301298
DOI
StatusPublished - 2023
Evenemang2023 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2023 - Vancouver, Kanada
Varaktighet: 2023 juni 182023 juni 22

Publikationsserier

NamnProceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition
Volym2023-June
ISSN (tryckt)1063-6919

Konferens

Konferens2023 IEEE/CVF Conference on Computer Vision and Pattern Recognition, CVPR 2023
Land/TerritoriumKanada
OrtVancouver
Period2023/06/182023/06/22

Bibliografisk information

Publisher Copyright:
© 2023 IEEE.

Ämnesklassifikation (UKÄ)

  • Datavetenskap (Datalogi)

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